Anti-micro-vibration suspension type wallboard mounting structure
By leaving gaps between the upper and lower ends of the partition and the roof and floor, and fixing it with connectors, the problem of the partition being unable to adapt to micro-vibrations in the clean room was solved, and the strength and vibration resistance of the partition were achieved.
Patent Information
- Application Number
- CN202520088259.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-14
- Publication Date
- 2026-02-03
- Estimated Expiration
- 2035-01-14
AI Technical Summary
The existing partition installation structure cannot adapt to the transmission of micro-vibrations between the upper and lower layers of the cleanroom.
The anti-micro-vibration suspended wall panel installation structure is adopted. By leaving gaps between the upper and lower ends of the partition and the roof and bottom plate, and using connectors to fix the partition to the roof and bottom plate, the connection strength is enhanced and the transmission of micro-vibrations is avoided.
It effectively avoids the transmission of micro-vibrations between the upper and lower layers of the cleanroom, and improves the connection strength and vibration resistance of the partitions.
Smart Images

Figure CN223867477U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of partition wall installation technology, and more specifically, it relates to a micro-vibration-resistant suspended wall panel installation structure. Background Technology
[0002] Cleanrooms often require partition walls to divide the interior into multiple spaces to define different functional areas. Furthermore, cleanrooms are often multi-story buildings. Since there are vibration sources on the upper side of the cleanroom, such as power equipment and power pipelines, the transmission of micro-vibrations must also be considered at the connection between the lower partition and the top.
[0003] In the existing technology, when the upper and lower ends of the partition are connected to the roof or the base plate, they are usually connected by the ceiling track trough and the floor track trough, and fixed with sealant. However, this connection method cannot adapt to the micro-vibrations between the upper and lower structures. Utility Model Content
[0004] The purpose of this utility model is to provide a micro-vibration-resistant suspended wall panel installation structure, which aims to solve the technical problem that traditional partition installation structures cannot adapt to the micro-vibration of the partition.
[0005] To achieve the above objectives, the technical solution adopted by this utility model is: to provide a micro-vibration-resistant suspended wall panel installation structure, comprising:
[0006] Install a partition for vertical support between the roof and the base plate; a first gap is left between the top of the partition and the roof, and a second gap is left between the bottom of the partition and the base plate;
[0007] Two sets of first connectors are symmetrically distributed on both sides of the first gap; one end of each set of first connectors is fixed to the upper end of the mounting partition, and the other ends of both sets of first connectors are bent in the opposite direction and fixed to the roof; and
[0008] Two sets of second connectors are symmetrically distributed on both sides of the second gap; one end of each set of second connectors is fixed to the lower end of the mounting partition, and the other end of each set of second connectors is bent in the opposite direction away from the mounting partition and fixed to the base plate.
[0009] In one possible implementation, the mounting partition includes:
[0010] Color steel sheet;
[0011] The upper frame is located at the upper end of the color steel plate and leaves the first gap between it and the roof; the upper frame is respectively connected to two sets of the first connecting members; and
[0012] The lower frame is located at the lower end of the color steel plate and has a second gap between it and the base plate; the lower frame is connected to two sets of the second connecting parts respectively.
[0013] In some embodiments, the top of the upper frame is provided with multiple sets of rivets; the bottom of the lower frame is provided with multiple sets of rivets; and multiple sets of reinforcing ribs parallel to the surface of the color steel plate are provided at intervals inside the color steel plate.
[0014] For example, a first threaded connector is horizontally inserted and fixed between the upper frame and the two sets of the first connectors; a second threaded connector is horizontally inserted and fixed between the lower frame and the two sets of the second connectors.
[0015] In one possible implementation, both sets of the first connectors are first angle steels with openings facing away from the mounting partition, and the two sides of the first angle steels abut against and are fixed to the side of the mounting partition and the bottom surface of the roof.
[0016] Both sets of the second connecting members are second angle steels with openings facing away from the mounting partition. The two sides of the second angle steel abut against and are fixed to the side of the mounting partition and the top surface of the bottom plate.
[0017] In some embodiments, a first adhesive sealing layer is provided at the connection between each of the first angle steels and the upper end of the mounting partition; a second adhesive sealing layer is provided at the connection between each of the second angle steels and the lower end of the mounting partition.
[0018] For example, a vibration damping pad is sandwiched between the second angle steel and the lower end of the mounting partition.
[0019] In one possible implementation, one side of the mounting partition is close to the horizontal mounting part, and a third gap is left between the mounting partition and the horizontal mounting part. A third connector is provided on the upper side of the third gap. One side of the third connector is fixed to the horizontal mounting part, and the other side is bent upward and fixed to the mounting partition.
[0020] In some embodiments, both sets of the first connecting members are triangular steels with openings facing the mounting partition, and the two sets of the third angle steels form a U-shaped structure with openings facing downwards; the two sides of the third angle steels abut against and are fixed to the side of the mounting partition and the bottom surface of the roof.
[0021] Both sets of the second connecting members are fourth angle steels with openings facing away from the mounting partition. The two sides of the fourth angle steel abut against and are fixed to the side of the mounting partition and the top surface of the bottom plate.
[0022] The third connector is a fifth angle steel with an opening facing away from the horizontal mounting part. The two sides of the fifth angle steel abut against and are fixed to the mounting partition and the horizontal mounting part.
[0023] For example, an arc-shaped pad is provided on the outer side of each of the two sets of fourth angle steels facing away from each other. The upper end of the arc-shaped pad is fixed to the mounting partition, and the lower end is fixed to the base plate.
[0024] Compared with the prior art, the solution shown in this application embodiment uses a first connector and a second connector to connect the mounting partition between the roof and the base plate to ensure the connection strength between the mounting partition and the roof and the base plate; and by setting a first gap and a second gap at the upper and lower ends of the mounting partition, a micro-vibration space is left at the upper and lower ends of the mounting partition, thereby avoiding the mutual transmission of micro-vibrations between the upper and lower floors of the factory building. Attached Figure Description
[0025] To more clearly illustrate the technical solutions in the embodiments of this utility model, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0026] Figure 1 Schematic diagram of the anti-vibration suspension wall panel installation structure provided in this embodiment of the utility model Figure 1 ;
[0027] Figure 2 Schematic diagram of the anti-vibration suspension wall panel installation structure provided in this embodiment of the utility model Figure 2 .
[0028] In the diagram: 1. Installed partition; 11. Color steel plate; 12. Top frame; 13. Bottom frame; 14. Reinforcing rib layer; 2. First connector; 21. First angle steel; 22. Third angle steel; 23. First threaded connector; 3. Second connector; 31. Second angle steel; 32. Fourth angle steel; 33. Second threaded connector; 4. Roof; 41. First gap; 5. Base plate; 51. Second gap; 6. Vibration damping pad; 7. Horizontal mounting part; 71. Third gap; 8. Fifth angle steel; 9. Arc-shaped pad; 10. Aluminum pad; 101. Third threaded connector. Detailed Implementation
[0029] To make the technical problems, technical solutions, and beneficial effects of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present utility model and are not intended to limit the present utility model.
[0030] It should be noted that when an element is referred to as being "set on" another element, it can be directly on or indirectly on that other element. It should be understood that the terms "length," "width," "upper," "lower," "front," "rear," "top," "bottom," "inner," and "outer," etc., indicating orientation or positional relationships, are based on the orientation or positional relationships shown in the accompanying drawings and are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model.
[0031] The terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this utility model, "a number" means two or more, unless otherwise explicitly specified.
[0032] Please refer to the following: Figures 1 to 2 The anti-vibration suspension wall panel installation structure provided by this utility model will now be described.
[0033] Example 1
[0034] It should be noted that for the installation partition 1 of the full-height wall structure, the top and bottom of the installation partition 1 need to be fixed separately. Therefore, a first gap 41 or a second gap 51 needs to be left between the fixed end of the installation partition 1 and the corresponding top and bottom installation parts to achieve the function of buffering and vibration resistance.
[0035] The anti-vibration suspended wall panel installation structure includes a mounting partition 1, two sets of first connectors 2, and two sets of second connectors 3. The mounting partition 1 is used for vertical support between the roof 4 and the base plate 5. A first gap 41 is left between the top of the mounting partition 1 and the roof 4, and a second gap 51 is left between the bottom of the mounting partition 1 and the base plate 5. The two sets of first connectors 2 are symmetrically distributed on both sides of the first gap 41. One end of each set of first connectors 2 is fixed to the upper end of the mounting partition 1, and the other end of the two sets of first connectors 2 is bent in the opposite direction and fixed to the roof 4. The two sets of second connectors 3 are symmetrically distributed on both sides of the second gap 51. One end of each set of second connectors 3 is fixed to the lower end of the mounting partition 1, and the other end of the two sets of second connectors 3 is bent in the opposite direction away from the mounting partition 1 and fixed to the base plate 5.
[0036] Specifically, one end of the first connector 2 extends downward and is fixed to the upper end of the mounting partition 1, while the other end is bent and abuts against the roof 4 so that the other end of the first connector 2 is fixed to the roof 4; similarly, one end of the second connector 3 extends upward and is fixed to the lower end of the mounting partition 1, while the other end is bent and abuts against the base plate 5 so that the other end of the second connector 3 is fixed to the base plate 5.
[0037] Compared with the prior art, the anti-micro-vibration suspended wall panel installation structure provided by this utility model uses the first connector 2 and the second connector 3 to connect the installation partition 1 between the roof 4 and the bottom plate 5 to ensure the connection strength between the installation partition 1 and the roof 4 and the bottom plate 5; and by setting the first gap 41 and the second gap 51 at the upper and lower ends of the installation partition 1, micro-vibration space is left at the upper and lower ends of the installation partition 1, thereby avoiding the mutual transmission of micro-vibrations between the upper and lower floors of the factory building.
[0038] Please see Figure 1 In some possible embodiments, the mounting partition 1 includes a color steel plate 11, an upper frame 12, and a lower frame 13; the upper frame 12 is located at the upper end of the color steel plate 11 and has a first gap 41 between it and the roof 4; the upper frame 12 is connected to two sets of first connectors 2 respectively; the lower frame 13 is located at the lower end of the color steel plate 11 and has a second gap 51 between it and the base plate 5; the lower frame 13 is connected to two sets of second connectors 3 respectively.
[0039] The upper frame 12 and the lower frame 13 are used to reinforce the upper and lower ends of the color steel plate 11; and the mounting partition 1 is connected to the roof 4 and the bottom plate 5 respectively through the upper frame 12 and the lower frame 13, which can ensure the connection strength of the mounting partition 1 connection part.
[0040] Preferably, both the upper frame 12 and the lower frame 13 are made of galvanized steel sheet with an arc-shaped structure to enhance the strength of the mounting partition 1.
[0041] Please see Figure 1 In some embodiments, the top of the upper frame 12 is provided with multiple sets of rivets; the bottom of the lower frame 13 is provided with multiple sets of rivets; and multiple sets of reinforcing ribs 14 parallel to the surface of the color steel plate 11 are provided at intervals inside the color steel plate 11.
[0042] By setting multiple sets of rivets on the upper frame 12 and the lower frame 13 respectively, the upper and lower ends of the mounting partition 1 are further strengthened, thereby improving the connection strength of the mounting partition 1.
[0043] By setting a reinforcing rib layer 14 inside the color steel plate 11, the overall support strength of the mounting partition 1 is improved.
[0044] Please see Figure 1For example, a first threaded connector 23 is horizontally inserted and fixed between the upper frame 12 and the two sets of first connectors 2; a second threaded connector 33 is horizontally inserted and fixed between the lower frame 13 and the two sets of second connectors 3.
[0045] By inserting the first threaded connector 23 between the two sets of first connectors 2 and the upper frame 12, the consistency of the two sets of first connectors 2 in the horizontal connection direction is ensured, thereby making the connection on both sides of the upper end of the mounting partition 1 symmetrical and reliable. Similarly, by providing the second threaded connector 33, both sets of second threaded connectors 33 can be connected to the lower end of the mounting partition 1 simultaneously, thereby making the connection on both sides of the lower end of the mounting partition 1 symmetrical and reliable.
[0046] In some possible embodiments, both sets of first connectors 2 are open opposite to the first angle steel 21 of the mounting partition 1, and the two sides of the first angle steel 21 are respectively abutted and fixed to the side of the mounting partition 1 and the bottom surface of the roof 4; both sets of second connectors 3 are open opposite to the second angle steel 31 of the mounting partition 1, and the two sides of the second angle steel 31 are respectively abutted and fixed to the side of the mounting partition 1 and the top surface of the bottom plate 5.
[0047] Compared to curved transitions and obtuse or acute angle bending transitions, right-angled angle steel structures have better support strength; by setting the first connector 2 and the second connector 3 as the first angle steel 21 and the second angle steel 31 respectively, the connection and support strength between the top of the mounting partition 1 and the roof 4 and the bottom plate 5 are guaranteed.
[0048] Please see Figure 1 In some embodiments, each of the first angle steels 21 is provided with a first adhesive sealing layer at the connection between it and the upper end of the mounting partition 1; and each of the second angle steels 31 is provided with a second adhesive sealing layer at the connection between it and the lower end of the mounting partition 1.
[0049] By adding a first adhesive sealing layer and a second adhesive sealing layer at the corresponding connection points, the connection strength at the corresponding connection points of the first angle steel 21 and the second angle steel 31 is increased.
[0050] Please see Figure 1 For example, a vibration damping pad 6 is sandwiched between the second angle steel 31 and the lower end of the mounting partition 1.
[0051] The vibration resistance of the bottom of the mounting partition 1 is enhanced by setting vibration damping pads 6 at the bottom.
[0052] Example 2
[0053] For the installation partition 1 of the half-height wall structure, it is necessary to fix the top and bottom of the installation partition 1 separately, and add a horizontal connecting structure. Therefore, the installation partition 1 has three fixing ends: the top, the bottom and the side part near the top. Thus, a first gap 41, a second gap 51 and a third gap 71 need to be left between the three fixing ends of the installation partition 1 and the corresponding roof 4, bottom plate 5 and horizontal installation part 7 to achieve the function of buffering and vibration resistance.
[0054] Please see Figure 1 The anti-vibration suspended wall panel installation structure includes not only the aforementioned mounting partition 1, two sets of first connectors 2, and two sets of second connectors 3, but also the mounting partition 1, which is used for vertical support between the roof 4 and the base plate 5. A first gap 41 is left between the top of the mounting partition 1 and the roof 4, and a second gap 51 is left between the bottom of the mounting partition 1 and the base plate 5. The two sets of first connectors 2 are symmetrically distributed on both sides of the first gap 41. One end of each set of first connectors 2 is fixed to the upper end of the mounting partition 1, and the other end of each set of first connectors 2 is bent in the opposite direction and fixed to the roof 4. The two sets of second connectors 3 are symmetrically distributed on both sides of the second gap 51. One end of each set of second connectors 3 is fixed to the lower end of the mounting partition 1, and the other end of each set of second connectors 3 is bent in the opposite direction away from the mounting partition 1 and fixed to the base plate 5. The anti-vibration suspension wall panel installation structure also includes a third connector; one side of the mounting partition 1 is close to the horizontal mounting part 7, and a third gap 71 is left between the mounting partition 1 and the horizontal mounting part 7. A third connector is provided on the upper side of the third gap 71. One side of the third connector is fixed to the horizontal mounting part 7, and the other side is bent upward and fixed to the mounting partition 1.
[0055] By leaving a third gap 71 between the mounting plate 1 and the horizontal mounting section 7, a vibration-resistant space is provided in the horizontal direction, thereby improving the vibration resistance of the mounting plate 1 in the horizontal direction and preventing the transmission of micro-vibrations between the upper and lower floors of the factory building.
[0056] Please see Figure 1 In some embodiments, both sets of first connecting members 2 are triangular steel 22 with openings facing the mounting partition 1, and the two sets of third angle steel 22 form a U-shaped structure with openings facing downwards; the two sides of the third angle steel 22 are respectively abutted and fixed to the side of the mounting partition 1 and the bottom surface of the roof 4; both sets of second connecting members 3 are fourth angle steel 32 with openings away from the mounting partition 1, and the two sides of the fourth angle steel 32 are respectively abutted and fixed to the side of the mounting partition 1 and the top surface of the bottom plate 5; the third connecting member is a fifth angle steel 8 with openings away from the horizontal mounting part 7, and the two sides of the fifth angle steel 8 are respectively abutted and fixed to the mounting partition 1 and the horizontal mounting part 7.
[0057] It should be understood that the roof structure 4 at the top of the semi-high wall structure is usually composed of DCC-supported square steel tubes. Therefore, by connecting two sets of third angle steels 22 together to form a U-shaped structure with the opening facing downwards, it is convenient to connect and install the top of the partition 1 and the square steel tube.
[0058] Specifically, a third threaded connector 101 can be vertically inserted between the bottom of the U-shaped structure and the square steel pipe to enhance the connection strength between the third angle steel 22 and the square steel pipe.
[0059] By setting the third connector as the structure of the fifth angle steel 8, the connection and support strength of the side and horizontal connection of the mounting partition 1 are guaranteed.
[0060] In some embodiments, an aluminum pad 10 is provided at the bottom of the U-shaped structure formed by the two sets of third angle steels 22, and the aforementioned third threaded connector 101 is fixed between the aluminum pad 10, the bottom of the U-shaped channel, and the roof 4.
[0061] Furthermore, by adding an aluminum pad 10, the connection strength between the U-shaped structure and the top square steel tube is enhanced.
[0062] Please see Figure 1 For example, an arc-shaped pad 9 is provided on the outer side of the two sets of fourth angle steels 32 facing away from each other. The upper end of the arc-shaped pad 9 is fixed on the mounting partition 1, and the lower end is fixed on the base plate 5.
[0063] The aesthetics of the bottom connection of the mounting partition 1 are improved by adding an arc-shaped pad 9.
[0064] Example 3
[0065] For double-door structures suspended on walls, the suspension installation method provided in this application can also be used.
[0066] Specifically, an installation frame is set on the outer edge of the door frame. The installation frame has an H-shaped structure, with a double door at the bottom and a suspended wall at the top. The installation frame replaces the position of the installation partition 1 and is vertically supported between the roof 4 and the bottom plate 5. It is connected to the roof 4 and the bottom plate 5 through the first connector 2 and the second connector 3, respectively.
[0067] A first gap 41 is left between the top of the mounting frame and the roof 4, and a second gap 51 is left between the bottom of the frame and the base plate 5. Two sets of first connectors 2 are symmetrically distributed on both sides of the first gap 41. One end of each set of first connectors 2 is fixed to the upper end of the mounting frame, and the other end of each set of first connectors 2 is bent in the opposite direction and fixed to the roof 4. Two sets of second connectors 3 are symmetrically distributed on both sides of the second gap 51. One end of each set of second connectors 3 is fixed to the lower end of the mounting frame, and the other end of each set of second connectors 3 is bent in the opposite direction away from the mounting frame and fixed to the base plate 5.
[0068] Optionally, the mounting frame can be constructed using rectangular square steel tubes connected sequentially to form an H-shaped structure. Preferably, the square steel tubes are 100*50*3mm in size to accommodate double doors. Preferably, the bottom of the door frame is positioned 15-20mm above the base plate 5.
[0069] For example, the first connector 2 and the second connector 3 are made of angle steel.
[0070] In addition, when connecting the top of the double door to the middle of the mounting frame and the suspended wall, since the middle of the H-shaped structure of the mounting frame is formed by connecting square steel pipes, the square steel pipe in the middle of the H-shaped structure of the mounting frame is defined as the first square steel pipe. At this time, the first square steel pipe needs to be connected to the upper suspended wall and the lower double door frame respectively.
[0071] Specifically, a first square steel pipe is placed below the suspended wall; a first H-shaped steel beam is installed on top of the first square steel pipe, with the bottom of the web of the first H-shaped steel beam abutting against the top of the first square steel pipe, and a fourth gap is left between the top of the web of the first H-shaped steel beam and the bottom of the suspended wall. The first H-shaped steel beam, the top of the first square steel pipe, and the bottom of the suspended wall are fixed by threaded parts in a vertical direction.
[0072] Furthermore, a second H-shaped steel beam is installed between the top of the door frame and the first square steel pipe, with the top of the web of the second H-shaped steel beam abutting against the bottom of the first square steel pipe and the bottom of the web of the second H-shaped steel beam abutting against the top of the door frame. The top of the door frame, the second H-shaped steel beam, and the bottom of the first square steel pipe are fixed by threaded fittings.
[0073] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions and improvements made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A vibration-damping suspended wall panel installation structure, characterized in that, include: Install a partition (1) for vertical support between the roof (4) and the base plate (5); the top of the partition (1) has a first gap (41) between it and the roof (4), and the bottom has a second gap (51) between it and the base plate (5); Two sets of first connectors (2) are symmetrically distributed on both sides of the first gap (41); one end of each set of first connectors (2) is fixed to the upper end of the mounting partition (1), and the other ends of the two sets of first connectors (2) are bent in the opposite direction and fixed to the roof (4); and Two sets of second connectors (3) are symmetrically distributed on both sides of the second gap (51); one end of each set of second connectors (3) is fixed to the lower end of the mounting partition (1), and the other end of each set of second connectors (3) is bent in the opposite direction away from the mounting partition (1) and fixed to the base plate (5).
2. The anti-vibration suspension wall panel installation structure as described in claim 1, characterized in that, The mounting partition (1) includes: Color steel plate (11); The upper frame (12) is located at the upper end of the color steel plate (11) and has the first gap (41) between it and the roof (4); the upper frame (12) is connected to two sets of the first connectors (2) respectively; and The lower frame (13) is located at the lower end of the color steel plate (11) and has a second gap (51) between it and the base plate (5); the lower frame (13) is connected to two sets of the second connecting pieces (3) respectively.
3. The anti-vibration suspension wall panel installation structure as described in claim 2, characterized in that, The top of the upper frame (12) is provided with multiple sets of rivets; the bottom of the lower frame (13) is provided with multiple sets of rivets; and multiple sets of reinforcing ribs (14) parallel to the surface of the color steel plate (11) are provided at intervals inside the color steel plate (11).
4. The anti-vibration suspension wall panel installation structure as described in claim 3, characterized in that, A first threaded connector (23) is horizontally inserted and fixed between the upper frame (12) and the two sets of first connectors (2); a second threaded connector (33) is horizontally inserted and fixed between the lower frame (13) and the two sets of second connectors (3).
5. The anti-vibration suspension wall panel installation structure as described in claim 1, characterized in that, Both sets of the first connecting members (2) are first angle steels (21) with openings facing away from the mounting partition (1). The two sides of the first angle steels (21) abut against and are fixed to the side of the mounting partition (1) and the bottom surface of the roof (4). Both sets of the second connecting members (3) are second angle steels (31) with openings facing away from the mounting partition (1). The two sides of the second angle steels (31) abut against and are fixed to the side of the mounting partition (1) and the top surface of the bottom plate (5).
6. The anti-vibration suspension wall panel installation structure as described in claim 5, characterized in that, Each of the first angle steels (21) is provided with a first adhesive sealing layer at the connection between the first angle steel (21) and the upper end of the mounting partition (1); each of the second angle steels (31) is provided with a second adhesive sealing layer at the connection between the second angle steel (31) and the lower end of the mounting partition (1).
7. The anti-vibration suspension wall panel installation structure as described in claim 6, characterized in that, A vibration damping pad (6) is sandwiched between the second angle steel (31) and the lower end of the mounting partition (1).
8. The anti-vibration suspension wall panel installation structure as described in claim 1, characterized in that, The mounting partition (1) is close to the horizontal mounting part (7) on one side, and a third gap (71) is left between the mounting partition (1) and the horizontal mounting part (7). A third connector is provided on the upper side of the third gap (71). One side of the third connector is fixed to the horizontal mounting part (7), and the other side is bent upward and fixed to the mounting partition (1).
9. The anti-vibration suspension wall panel installation structure as described in claim 8, characterized in that, Both sets of the first connecting members (2) are triangular steel (22) with openings facing the mounting partition (1), and the two sets of the third angle steel (22) form a U-shaped structure with openings facing downwards; the two sides of the third angle steel (22) abut against and are fixed to the side of the mounting partition (1) and the bottom surface of the roof (4); Both sets of the second connecting members (3) are fourth angle steels (32) with openings facing away from the mounting partition (1). The two sides of the fourth angle steels (32) abut against and are fixed to the side of the mounting partition (1) and the top surface of the bottom plate (5). The third connector is a fifth angle steel (8) with its opening facing away from the horizontal mounting part (7). The two sides of the fifth angle steel (8) abut against and are fixed to the mounting partition (1) and the horizontal mounting part (7).
10. The anti-vibration suspension wall panel installation structure as described in claim 9, characterized in that, An arc-shaped pad (9) is provided on the outer side of each of the two sets of fourth angle steels (32) facing away from each other. The upper end of the arc-shaped pad (9) is fixed on the mounting partition (1), and the lower end is fixed on the base plate (5).